Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've created a page "student_picture.php" using the content-type:image/jpeg. im having problem when I want to add other text in that same page..

here is the sample of my code:

<?php
session_start();

if(!isset($_SESSION["StudentNo"])){
    header("location:login.php");
}

$StudentNo = $_SESSION['StudentNo'];

require("includes/connection.php");

$sql = "SELECT StudentPicture from dbo.Students where StudentNo = '$StudentNo'";
$stmt = sqlsrv_query( $conn, $sql );

if( $stmt === false) {
    die( print_r( sqlsrv_errors(), true) );
}

while( $row = sqlsrv_fetch_array( $stmt, SQLSRV_FETCH_ASSOC) ) {
    $img = $row['StudentPicture'];

    if ($img == null ) {
        echo "<img src='img/default_pic.gif'>";
    } else {
        $img =  trim($img);
        header('Content-Type: image/jpeg');
        echo $img;
    }

    echo $StudentNo;
}
?>

The image is successfully displaying but the echo $StudentNo is not displaying.. can anyone help me with my prob? thanks in advance.

share|improve this question
    
Please see related question stackoverflow.com/questions/2428004/… –  Conrad Lotz Sep 4 '12 at 6:41

4 Answers 4

I think that you cannot display text while using the Content-Type of image/jpeg, or any other kind of image format that I know of. Text can only be displayed with text/?, or other exceptions such as application/pdf.

If you don't know how to display the image on a separate page while using a php file, just use:

<img src="path/to/yourphpfile.php" />

Just like any other image.

Hope that helped.

share|improve this answer
    
Yes I think so. I cannot add text when I'm using content-type:image/jpeg. I think I need to call the page that displays the image from another page. The problem is I don't know how to do that :( –  user1645213 Sep 6 '12 at 3:11
    
@user1645213 I updated my answer, take a look –  think123 Sep 6 '12 at 7:05

You might need to use following code :

<?php 

$image = 'http://www.example.com/image.jpg';

$info = getimagesize($image);

header('Content-Type: '.$info['mime']);

echo file_get_contents($image);

exit;

?>
share|improve this answer

You are outputting an image when it is found in the database, you would either need to include a dynamic img via

<img src="anotherscript.php">

Or generate a jpg file using one of the built in image libraries and storing its file name in that database rather than storing the raw data

share|improve this answer

You have to exit your script, because the header is sent to the client browser. If the $_SESSION["StudentNo"] is not present the script will process and will try to ouput your image.

<?php
    session_start();
    if(!isset($_SESSION["StudentNo"])){
        header("location:login.php");
        die();
    }

And that is not a proper way to output an image, echo "<img src='img/default_pic.gif'>"; with header('Content-Type: image/jpeg'); is not ok, either you return without that header or you read the image:

if ($img == null){
    $img = 'img/default_pic.gif';
} else {
    $img =  trim($img);
}

header('Content-Type: image/jpeg');
readfile($img);

or you lose the header tag

if ($img == null){
    $img = "<img src='img/default_pic.gif'>";
} else {
    $img = "<img src='".trim($img)."'>";
}
echo $img;

So your script could be:

<?php
    session_start();
    if(!isset($_SESSION["StudentNo"])){
        header("location:login.php");
        die();
    }
    $StudentNo = $_SESSION['StudentNo'];

    require("includes/connection.php");

    $sql = "SELECT StudentPicture from dbo.Students where StudentNo = '$StudentNo'";
    $stmt = sqlsrv_query( $conn, $sql );
    if( $stmt === false) {
        die( print_r( sqlsrv_errors(), true) );
    }

    while( $row = sqlsrv_fetch_array( $stmt, SQLSRV_FETCH_ASSOC) ) {
        $img = $row['StudentPicture'];
        if ($img == null){
            $img = "<img src='img/default_pic.gif'>";
        } else {
            $img = "<img src='".trim($img)."'>";
        }
        echo $img;
        echo $StudentNo;
    }
?>

I don't know the functions inside your DB connection, but I think you should use something like $row = sqlsrv_fetch_row( $stmt, SQLSRV_FETCH_ASSOC); and make without that while

share|improve this answer
    
thank you for your suggestions. I'm going to try what you said. thankd a lot –  user1645213 Sep 6 '12 at 3:13
    
i cannot output the image without the content-type:image/jpeg.. i will only get raw data without it.. i also having error in your code with readfile($img); –  user1645213 Sep 6 '12 at 6:00
    
I clearly explained how you should output the image, readfile must has a valid path to the image –  Mihai Iorga Sep 6 '12 at 6:35

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.